International Journal on Science and Technology

E-ISSN: 2229-7677     Impact Factor: 9.88

A Widely Indexed Open Access Peer Reviewed Multidisciplinary Bi-monthly Scholarly International Journal

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Agricultural Chatbot Voice Assistant Using NLP Techniques

Author(s) Maruti saisurya rajanala, Muppirisetti Sivakiran, Manduva Sairevanth, Ms S.Subbulakshmi, Dr Anand M
Country India
Abstract In modern agriculture, the convergence of technology has become increasingly critical for enhancing productivity and sustainability. This abstract introduces the concept of an Agriculture Chatbot Voice Assistant (ACVA) employing Multi-Layer Perceptron (MLP)neural networks and Natural Language Processing (NLP) techniques. ACVA serves as an innovative virtual advisor, empowering farmers with real-time insights and recommendations. By leveraging MLP, ACVA analyzes complex agricultural datasets encompassing soil health, weather patterns, and crop characteristics to provide tailored guidance on crop management, pest control, and market trends. Additionally, NLP capabilities enable ACVA to understand and respond to farmers' inquiries through natural language interactions. Integrating voice recognition technology further enhances accessibility, allowing farmers tonguefish ACVA seamlessly, even in remote or hands-free environments.
Keywords Chatbot, NLP techniques, Machine learning Algorithms, Django Framework
Field Engineering
Published In Volume 16, Issue 1, January-March 2025
Published On 2025-03-28
Cite This Agricultural Chatbot Voice Assistant Using NLP Techniques - Maruti saisurya rajanala, Muppirisetti Sivakiran, Manduva Sairevanth, Ms S.Subbulakshmi, Dr Anand M - IJSAT Volume 16, Issue 1, January-March 2025. DOI 10.71097/IJSAT.v16.i1.2892
DOI https://doi.org/10.71097/IJSAT.v16.i1.2892
Short DOI https://doi.org/g896ft

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